CROSS REFERENCE TO THE RELATED APPLICATION
[0001] This application is based on and claims Convention priority to Japanese patent application
No.
2010-239419, filed October 26, 2010, the entire disclosure of which is herein incorporated by reference as a part of
this application.
BACKGROUND OF THE INVENTION
(Field of the Invention)
[0002] The present invention relates to a unit configuration type machine tool, a conveyance
apparatus and a processing equipment, in which any one of the machine tool and the
conveyance apparatus for a work transportation is designed to be of a unit configuration
type capable of recombining and/or expanding and which can be transformed to various
figurations to enable them to accommodate a mixed production or the like.
(Description of Related Art)
[0003] Hitherto, in the machine tool, a unit configuration type machine tool has been suggested
(as disclosed in, for example, the Patent Document 1 listed below) in which a feed
slide, a headstock, a tool post and others are rendered to be of a unit configuration
type and by recombining the units, a turning center, for example, is formed or a machining
center is formed. The machine tool of a recombinable type discussed above is known
as a module configuration machine tool or block build type machine tool.
[0004] Also, as a conveyance apparatus to deliver or discharge workpieces in or from a machine
tool such as, for example, a lathe or turning machine, the type has hitherto been
well known, which includes a lifter, mounted on a traveling member movable along a
guide rail, and a chuck provided in a loader head at a lower end of the lifter to
hold a workpiece. In this type of the conveyance apparatus, the traveling member moves
along a linear transport path. It has, however, been found that only with the linear
transport path, an installation space for a machine tool is limited and it is difficult
to make the efficient utilization of the floor space available in a factory. Because
of this, suggestions have hitherto been made to include at least one curved section
in the transport path such as disclosed in, for example, the Patent Documents 2 and
3 listed below.
[Prior Art Literature]
[0006] The conventional unit configuration type machine tool is such that what is unitized
is merely limited to mechanism components such as, for example, a feed slide, a headstock
and a tool post, and wiring for drive sources such as, for example, motors provided
in the units are individually designed and realized for each unit after assemblage.
For this reason, a wiring work is complicated and therefore, recombination in the
field is difficult to achieve. In particular, even amplifiers or the like for driving
the units, which form accessory elements such as a chuck changing device or the like
have hitherto been installed on a control panel and, therefore, the wiring considerably
varies depending on whether those accessory units are to be installed or whether they
should not be installed, resulting in further complication in wiring work.
[0007] Also, the conventional unit configuration type processing equipment is such that
the conveyance apparatus has not yet been unitized. Thus, where recombination and/or
expansion of the machine tool is carried out, a design of the conveyance apparatus
suitably employed in the machine tool which has been expanded has been required. Because
of it, even though the machine tool is of a unit configuration type, effects of a
free property in recombining have not been sufficiently demonstrated. By way of example,
a rail employed in the conventional conveyance apparatus of a gantry type or the like
is such that a track rail has been formed by processing a square pipe and then installing
a linear guide on the processed square pipe. For this reason, once the layout changes,
the entire rail need be replaced. However, a quick change in machine tool and/or processing
equipment, which are to be installed within the factory, have come to be desired in
view of the recent trend of large item small scale production and/or the desire to
change products accelerated by product development.
SUMMARY OF THE INVENTION
[0008] In view of the foregoing, the present invention has for its essential object to provide
a unit configuration type machine tool, a unit configuration type conveyance apparatus,
and a unit configuration type processing equipment, as well as units for the machine
tool and travel guide units, in which, including a connecting work of a wiring system,
the degree of freedom of recombination and expansion is high and the recombination
can be easily and quickly accomplished in the field.
[0009] In view of the foregoing, the present invention according to a first aspect thereof
provides a unit configuration type machine tool that includes a plurality of mechanism
units, in which case each of the mechanism units includes a connecting unit to mechanically
connect the other mechanism units or one of component elements of the machine tool
with each other, and at least one of the mechanism units are assembly component part
of a kind having a movable part and/or a drive source and also having a unit portion
wiring and a terminal to connect the unit portion wiring.
[0010] According to the first aspect of the present invention, at least one of the mechanism
units are assembly component part of a kind having a movable part and/or a drive source
and also having a unit portion wiring and a terminal to connect the unit portion wiring.
Because of this, the degree of freedom of recombination and expansion, including a
connecting work of the wiring system, is high and the recombination can be easily
and quickly accomplished in the field. For this reason, it can quickly accommodate
a change in processing equipment in dependence on the mixed production. It is to be
noted that the term "machine tool" referred to in the description of the present invention
made hereinabove and hereinafter should be construed as including not only a narrowly
defined machine tool such as, for example, lathe or the like capable of performing
a mechanical processing such as, for example, a cutting process, but also a broadly
defined machine tool including a sheet metal processing machine such as, for example,
a punch press, a laser processing machine and so on.
[0011] In the unit configuration type machine tool designed in accordance with the first
aspect of the present invention, a base and a plurality of mechanism units are provided,
and at least one of the mechanism units are assembly component parts having the movable
part and the drive source. The base referred to above includes a plurality of unit
installing seats to removably install any one of the mechanism units, a base portion
wiring, and terminals on a main control device side and a mechanism unit side that
are connected with the base portion wiring. Each of the mechanism units may be of
a type that is removably installed on the unit installing seat of the base or on the
mechanism unit mounted on the unit installing seat of the base, and having a terminal
and a unit portion wiring that are connected with a terminal on the mechanism unit
side of the base or a terminal of the unit portion wiring provided in the other mechanism
unit.
[0012] In the case of the above described construction, at least one of the mechanism units
has the unit portion wiring and the terminal thereof. Because of it, when the mechanism
unit is recombined, connection between the terminals provided in the base and the
mechanism unit makes it possible to complete a wiring work of the machine tool. For
this reason, the degree of freedom of recombination and expansion, including a connecting
work of the wiring system, is high and the recombination can be easily and quickly
accomplished in the field. As a result, it can quickly accommodate a change in processing
equipment in dependence on the mixed production. Also, since the use is made of the
base on which the mechanism unit is installed and since the base includes the unit
installing seat, the base portion wiring and the terminal for that wiring, the recombination
can be further easily and further quickly accomplished.
[0013] In the unit configuration type machine tool of the type referred to above, at least
one of the mechanism units may include a unit built-in control circuit to drive the
drive source of the mechanism unit, in which case the unit built-in control circuit
is connected with the main control device through the unit portion wiring of the mechanism
unit and the base portion wiring of the base. The unit built-in control circuit is
a circuit including a control function of a strong current system which includes,
for example, an electric motor drive current. Where the unit built-in control circuit
to drive the drive source for the mechanism unit is provided in the mechanism unit
in this way, there is no need to newly use a drive circuit within the main control
device nor to modify the drive circuit within the main control device, and the main
control device suffices to have a portion of its program to which a modification is
made. For this reason, the recombination and expansion of the machine tool can be
further easily and further quickly accomplished.
[0014] The present invention in accordance with a second aspect thereof provides a unit
configuration type conveyance apparatus to load and unload a work onto and from a
machine tool, which includes a guide equipped frame having a travel guide, and a traveling
member movable along the travel guide. The traveling member has a holding unit to
hold the work and the guide equipped frame is comprised of a plurality of travel guide
units connected with each other in a direction conforming to a traveling direction
of the traveling member. Since it is constructed by connecting the plurality of the
travel guide units, recombination and expansion of the transport path can be easily
and quickly accomplished.
[0015] The travel guide unit referred to above may include one of an electric component
and an electric wiring. Since in this way the travel guides in the conveyance apparatus
are unitized and one of the electric component and the electric wiring is provided
in each of the travel guide units, the recombination and expansion of the transport
path, including an electric system, can be easily and quickly accomplished.
[0016] A drive source to cause the traveling member of the conveyance apparatus to move
may be a linear motor, in which case the linear motor includes a plurality of armatures
on a primary side, that are arranged along the travel guide, and a mover provided
in the traveling member, and each of the travel guide units is provided with the armatures
and a sensor to detect a position of the mover as the electric component parts. Where
in this way the drive source to drive the traveling member is employed in the form
of the linear motor, and the armatures and the sensor to detect the position of the
mover are provided in the travel guide unit, the recombination and expansion of the
transport path, including the drive system, can be easily and quickly accomplished.
[0017] Where each of the travel guide units includes an inverter to supply an electric driving
power to each of the armatures and a control part to control the armatures by controlling
the inverter, the recombination and expansion of the transport path, including the
guide, the drive system and the electric system, can be easily and quickly accomplished.
[0018] The plurality of the travel guide units may include a travel guide unit which forms
a rectilinear section of the travel guide, and a travel guide unit which forms a curved
section of the travel guide. If the travel guide unit includes the rectilinear section
and the curved section, by a combination of the units, the transport path can be designed
to have a path configuration having a free property such as, an L-shape and a ring
shape.
[0019] The present invention in accordance with a third aspect of thereof provides a unit
configuration type processing equipment which includes a machine tool and a conveyance
apparatus to load and unload a work relative to the machine tool, in which case the
machine tool is a unit configuration type machine tool equipped with a plurality of
types of mechanism units. Each of the mechanism units includes a connecting unit to
mechanically connect the other mechanism units or one of component elements of the
machine tool with each other, and at least one of the mechanism units is an assembly
component part of a kind having a movable part and/or a drive source and also having
a unit portion wiring and a terminal to connect the unit portion wiring.
[0020] According to the unit configuration type processing equipment of the construction
referred to above, the machine tool is a unit configuration type machine tool, each
of the mechanism units includes a connecting unit to mechanically connect, and at
least one of the mechanism units is a assembly component part of a kind having a movable
part and/or a drive source and also having a unit portion wiring and a terminal to
connect the unit portion wiring. Because of it, with respect to the machine tool,
the degree of freedom of recombination and expansion, including a connecting work
of the wiring system, can be easily and quickly accomplished. For this reason, it
is possible to accommodate a change in processing equipment according to the mixed
production.
[0021] The unit configuration type processing equipment according the present invention
is a processing equipment which includes a machine tool and a conveyance apparatus
to load and unload a work relative to the machine tool, in which case the machine
tool is a unit configuration type machine tool equipped with a plurality of types
of mechanism units, and a base may include a plurality of unit installing seats to
removably install any one of the mechanism units, a base portion wiring, and terminals
on a main control device side and a mechanism unit side that is connected with the
base portion wiring. Each of the mechanism units is of a type that may be removably
installed on the unit installing seat of the base or on the mechanism unit mounted
on the unit installing seat of the base, and having a terminal and a unit portion
wiring that are connected with a terminal on the mechanism unit side of the base or
a terminal of the unit portion wiring provided in the other mechanism unit.
[0022] In the case of the construction described above, the machine tool is a unit configuration
type machine tool and at least one of the mechanism units has a unit portion wiring
and a terminal thereof. Because of it, when the mechanism unit is recombined, the
wiring work of the machine tool completes when connection is made between terminals
provided in the base and the mechanism units. For this reason, the degree of freedom
of recombination and expansion, including the connecting work of the wiring system,
is high and the recombination and expansion in the field can be easily and quickly
accomplished. As a result, it is possible to quickly accommodate any change in processing
equipment according to the mixed production. Also, the unit configuration type machine
tool has the base on which the mechanism units are installed, and this base has the
unit installing seats, the base portion wiring and the terminal for that wiring. Accordingly,
the recombination can be further easily and further quickly accomplished.
[0023] The different unit configuration type processing equipment of the present invention
may be a processing equipment which includes a machine tool and a conveyance apparatus
to load and unload a work relative to the machine tool, in which case the conveyance
apparatus is a unit configuration type conveyance apparatus including a guide equipped
frame having a travel guide, and a traveling member movable along the travel guide.
The traveling member has a holding unit to hold the work and the guide equipped frame
is comprised of a plurality of travel guide units connected with each other in a direction
conforming to a traveling direction of the traveling member. In the case of the construction
described above, since the conveyance apparatus is the unit configuration type conveyance
apparatus assembled by connecting the plurality of travel guide units, recombination
and expansion of the transport path can be easily and quickly accomplished and it
is also possible to quickly accommodate any change in installing position and in form
of the machine tool.
[0024] The travel guide unit may include one of an electric component and an electric wiring.
In this case, the recombination and expansion of the transport path, including the
installation of the electric component and the electric wiring work, can be easily
and quickly accomplished.
[0025] The unit configuration processing equipment of the present invention may be a processing
equipment which includes a machine tool and a conveyance apparatus to load and unload
a work relative to the machine tool, in which case the machine tool is a unit configuration
type machine tool equipped with a plurality of types of mechanism units. Each of the
mechanism units includes a connecting unit to mechanically connect the other mechanism
units or one of component elements of the machine tool with each other, and at least
one of the mechanism units is a assembly component part of a kind having a movable
part and/or a drive source and also having a unit portion wiring and a terminal to
connect the unit portion wiring. The conveyance apparatus is a unit configuration
type conveyance apparatus including a guide equipped frame having a travel guide,
and a traveling member movable along the travel guide. The traveling member has a
holding unit to hold the work and the guide equipped frame is comprised of a plurality
of travel guide unit connected with each other in a direction conforming to a traveling
direction of the traveling member.
[0026] In the case where both of the machine tool and the conveyance apparatus are made
to be a unit configuration type, the degree of freedom of change in form of the processing
equipment can be further increased. Also, since some of the mechanism units of the
machine tool have the unit portion wiring and the terminal thereof, the degree of
freedom of recombination and expansion, including the connecting work of the wiring
system, can be enhanced and the recombination can be easily and quickly accomplished
in the field. Even with the conveyance apparatus, since it is constituted by connecting
the travel guide units, a recombining work and an expanding work can be easily and
quickly performed. Because of it, it is possible to quickly accommodate a moderate
change in processing equipment according to the mixed production.
[0027] The unit configuration type processing equipment of the present invention may be
a processing equipment which includes a machine tool and a conveyance apparatus to
load and unload a work relative to the machine tool, in which case the machine tool
is a unit configuration type machine tool including a base and a plurality of types
of mechanism units, and at least one of the mechanism units is an assembly component
part of a kind having a movable part and/or a drive source. The base referred to above
includes a plurality of unit installing seats to removebly install any one of the
mechanism units, a base portion wiring and terminals on a main control device side
and a mechanism unit side that is connected with the base portion wiring. Each of
the mechanism units is removably installed on the unit installing seat in the base
or removably mounted on a mechanism unit installed on the unit installing seat of
the base and includes a terminal and a unit portion wiring that are connected with
the terminal of the unit portion wiring connected with the terminal on the mechanism
unit side of the base or a terminal of the unit portion wiring provided in the other
mechanism unit.
[0028] Even in the case of the construction described above, since both of the machine tool
and the conveyance apparatus are designed to be of a unit configuration type, the
degree of freedom of change in form of the processing apparatus can increase further.
Also, some of the mechanism units of the machine tool include the unit portion wiring
and the terminal thereof, the degree of freedom of recombination and expansion, including
the connecting work of the wiring system, can be enhanced and the recombination and
expansion can be easily and quickly accomplished in the field. In addition, the unit
configuration type machine tool includes the base on which the mechanism units are
installed and the base in turn includes a unit installing seat, a base portion wiring,
and a terminal for the wiring. Therefore, the recombination can be further easily
and further quickly accomplished. Even with the conveyance apparatus, since it is
constructed by connecting the travel guide units, the recombination and expansion
can be easily and quickly accomplished. For this reason, it is possible to quickly
accommodate a moderate change in processing equipment according to the mixed production.
[0029] Where at least one of the various mechanism units of the machine tool includes the
unit built-in control circuit to drive the drive source of the mechanism unit and
this unit built-in control circuit is connected with the main control device through
the unit portion wiring and terminal of the mechanism unit and the base portion wiring
and terminal of the base, for the purpose of the recombination or the like there is
no need to use a new drive circuit within the main control device nor to modify the
drive circuit within the main control device and the main control device may work
satisfactorily if the program used therein is partially modified. For this reason,
the recombination and expansion of the machine tool can be further easily and further
quickly accomplished.
[0030] Where each of the travel guide units includes one of the electric component and the
electric wiring, the recombination and expansion of the transport path, including
the electric system, can be easily and quickly accomplished. Where the drive source
to drive the traveling member of the conveyance apparatus is in the form of a linear
motor and includes a plurality of the armatures on the primary side, which are arranged
along the travel guide, and a mover provided in the traveling member, in which case
each of the travel guide units is provided with the electric element and a sensor
to detect a position of the mover, the recombination and expansion of the transport
path, including the drive system, can be easily and quickly accomplished.
[0031] Where each of the travel guide units includes an inverter to supply an electric driving
power to each of the armatures and a control part to control the armatures by controlling
the inverter, the recombination and expansion of the transport path, including the
guide, the drive system and the electric system, can be easily and quickly accomplished.
[0032] Where the plurality of the travel guide units include a travel guide unit which forms
the rectilinear section of the travel guide, and the travel guide unit which forms
the curved section of the travel guide, by the combination of the units the transport
path can be shaped to represent any desired path shape such as, for example, an L-shape
or a ring shape.
[0033] The present invention in accordance with a fourth aspect thereof provides a mechanism
unit for a machine tool that includes an assembly component having a movable part
and a drive source, which mechanism unit includes a terminal and a unit portion wiring,
adapted to be connected either with a terminal of the base on the mechanism unit side
or with a terminal of a unit portion wiring provided in a mechanism unit on a low
stage side, and a unit built-in control circuit to drive the drive source. Because
of the mechanism unit so constructed as described above, the degree of freedom of
recombination and expansion, including a connecting work of the wiring system, is
high and the recombination can be easily and quickly accomplished in the field. In
addition, any change in control system can also be accomplished quickly.
[0034] The present invention in accordance with a fifth aspect thereof provides a travel
guide unit for a unit configuration type conveyance apparatus, which includes a travel
guide section forming a part of a lengthwise direction of the travel guide, a frame
portion having the travel guide section installed therein, an armature installed in
the frame portion, a mover provided in the traveling member, and a sensor installed
in the frame portion to detect a position of the mover. According to this travel guide
unit of the structure described above, the recombination and expansion of the travel
path can be easily and quickly accomplished.
[0035] Any combination of at least two constructions, disclosed in the appended claims and/or
the specification and/or the accompanying drawings should be construed as included
within the scope of the present invention. In particular, any combination of two or
more of the appended claims should be equally construed as included within the scope
of the present invention.
BRIEF DESCRIPTION OF THE DRAWINGS
[0036] In any event, the present invention will become more clearly understood from the
following description of preferred embodiments thereof, when taken in conjunction
with the accompanying drawings. However, the embodiments and the drawings are given
only for the purpose of illustration and explanation, and are not to be taken as limiting
the scope of the present invention in any way whatsoever, which scope is to be determined
by the appended claims. In the accompanying drawings, like reference numerals are
used to denote like parts throughout the several views, and:
Fig. 1A is an explanatory diagram showing a conceptual structure of a unit configuration
type processing equipment designed in accordance with a preferred embodiment of the
present invention;
Fig. 1B is a perspective view of a machine tool employed in the processing equipment
shown in Fig. 1A;
Fig. 2 is a perspective view showing one example of a combined form of the unit configuration
type processing equipment;
Fig. 3 is a perspective view showing various examples of groups of a base and units
in the unit configuration type machine tool employed in the processing equipment;
Fig. 4 is a perspective view showing one example of the combined form of the unit
configuration type processing equipment;
Fig. 5 is a perspective view showing one example of a mechanism unit of the machine
tool;
Fig. 6 is a perspective view showing a different example of the mechanism unit of
the machine tool;
Fig. 7A is a perspective view showing one example of a tool head of the machine tool;
Fig. 7B is a perspective view showing another example of the tool head of the machine
tool;
Fig. 7C is a perspective view showing a further example of the tool head of the machine
tool:
Fig. 8A is a perspective view showing a travel guide unit, which will become a rectilinear
section of a conveyance apparatus used in the unit configuration type processing equipment;
Fig 8B is a perspective view showing a travel guide unit, which will become a curved
section of the conveyance apparatus;
Fig. 8C is a perspective view showing a traveling member of the conveyance apparatus;
Fig. 9A is a top plan view showing an example of the travel guide unit that is rectilinear;
Fig. 9B is a front elevational view of the travel guide unit of Fig. 9A;
Fig. 9C is a horizontal sectional view of the travel guide unit of Fig. 9A;
Fig. 10A is a top plan view showing an example of the travel guide unit that is curved;
Fig. 10B is a front elevational view of the travel guide unit of Fig. 10A;
Fig. 10C is a horizontal sectional view of the travel guide unit of Fig. 10A;
Fig. 11 is a block diagram showing a conceptual construction of a control system for
the unit configuration type processing equipment;
Fig. 12 is an explanatory diagram comprised of a perspective view, which shows a machine
part of the unit configuration type processing equipment, and a block diagram showing
a conceptual construction of the control system;
Fig. 13 is a block diagram showing explanatory details of the conceptual construction
of the control system used in the unit configuration type processing equipment;
Fig. 14 is a perspective view showing another example of the combined form of the
unit configuration type processing equipment;
Figs. 15A and 15B are perspective views showing a different example of the unit configuration
type processing equipment;
Figs. 16A to 16F are perspective views showing a still different example of the unit
configuration type processing equipment;
Fig. 17 is a top plan view showing one example of a combined form of a guide equipped
frame used in the conveyance apparatus:
Fig. 18 is a front elevational view showing one example of the form of the guide equipped
frame;
Fig. 19 is a top plan view showing the relation between a travel guide of the guide
equipped frame and the traveling member;
Fig. 20 is a top plan view showing the relation between the guide equipped frame,
a linear motor and the traveling member;
Fig. 21 is a fragmentary front elevational view, with a portion omitted, showing one
example of a combined form of the unit configuration type processing equipment;
Fig. 22 is a side view, with a portion broken away, showing the conveyance apparatus;
Fig. 23A is a top plan view showing the traveling member used in the conveyance apparatus;
Fig. 23B is a front elevational view of the traveling member;
Fig. 23C is a bottom plan view of the traveling member;
Fig. 23D is a rear view of the traveling member;
Fig. 24 is a transverse sectional view showing the travel guide and the traveling
member both in the conveyance apparatus;
Fig. 25 is a sectional view showing a portion of Fig. 22 on an enlarged scale;
Fig. 26 is a fragmentary sectional view showing the linear motor;
Fig. 27 is a top plan view showing an individual motor forming a part of the linear
motor;
Fig. 28 is a top plan view showing an arrangement of the individual motor forming
respective parts of the linear motor;
Fig. 29 is a sectional view showing the relation between the linear motor and a sensor;
Fig. 30 is a block diagram showing a drive system for the linear motor; and
Figs. 31A and 31B are top plan view showing another example of a combined form of
the guide equipped frame employed in the conveyance apparatus.
DESCRIPTION OF PREFERRED EMBODIMENTS
[0037] One preferred embodiment of the present invention will be described in detail with
particular reference to Figs. 1A and 1B to Fig. 30. Fig. 1A illustrates a conceptual
construction of a unit configuration type processing equipment according to the embodiment
and Fig. 1B shows a specific example of a tool machine used in this unit configuration
type processing equipment. Referring particularly to Fig. 1A, the unit configuration
type processing equipment is comprised of a machine tool 2 and a conveyance apparatus
1 to load and unload a workpiece or work W to and from the machine tool 2.
[0038] The machine tool 2 is a unit configuration type machine tool and includes a base
2A, a plurality of types of mechanism units 2U (2U
1, 2U
2 and 2U
3). Any of those mechanism units 2U are replaceable with other mechanism units 2U that
are prepared outside the machine as will be described in detail with particular reference
to Fig. 3 and others. As shown in Fig. 1A, each of the mechanism units 2U is an assembled
component including a unit main body 2Ua, a movable part 2Ub movable relative to the
unit main body 2Ua, and a drive source 2Uc to actuate the movable part 2Ub.
[0039] The base 2A is an element that will become a bed or a base frame or the like, and
includes a plurality of unit installing seats 61 to receive any mechanism unit 2U
replaceably installed thereon, a base portion wiring 62, and terminals 63 and 64 of
a main control device 31 side and the mechanism unit 2U connected with the base portion
wiring 62, respectively. Each of the unit installing seats 61 has a portion, which
forms a seat to replaceably install the mechanism unit 2U thereon, and a mounting
hole (not shown). It is to be noted that the unit installing seat 61 may be a rail
for guiding purpose.
[0040] Each of the mechanism units 2U is an element having a particular actuating function
of a tool post, a feed slide, a headstock and others in the machine tool, and is replaceably
installed on the unit installing seat 61 of the base 2A or on the mechanism unit 2U
installed on the unit installing seat 61 of the base 2A. In the example as shown in
Fig. 1B, the mechanism units 2U
1 and 2U
2 are installed on the base 2A and the mechanism unit 2U
3 is installed on the mechanism unit 2U
2. Each of the mechanism units 2U has an installing portion 65 adapted to be installed
on the unit installing seat 61, and the unit installing seat 61 and the installing
portion 65 are connected together by means of a connecting element 66 such as, for
example, a bolt or the like.
[0041] One of the mechanism units 2U, on which a different mechanism unit 2U may possibly
be installed, is provided with a unit installing seat 61U on an upper surface thereof.
The mechanism unit 2U that is installed on the other mechanism unit 2U is installed
on the unit installing seat 61 through the installing portion 65 thereof and connected
therewith by means of the connecting element 66. In other words, the unit installing
seats 61, 61u, the installing portion 65 and the connecting element 66 cooperate with
each other to define a connecting unit.
[0042] Although the base 2A and each of the unit installing seats 61, 61u of the mechanism
unit 2U are available in a plurality of types, they are standardized to the dimension
and the shape that are predetermined for each of groups, and the installing portion
65 of each of the mechanism units 2U is standardized to the dimension and the shape,
that are enough to accommodate the base 2A and the unit installing seats 61 and 61u
of the mechanism unit 2U for each of the groups. Accordingly, replacement of the mechanism
units 2U within the group is made possible.
[0043] Each of the mechanism units 2U has a unit portion wiring 67. Also, each of the mechanism
units 2U is connected with a terminal 64 of the base 2A on a mechanism unit side via
the unit portion wiring 67 or has a terminal 69 that is connected with a terminal
68 on a front end side of the unit portion wiring 67 in the other mechanism unit side
2U on a lower stage side on a base end side thereof. The unit portion wiring 67 is
connected with a drive source 2Uc of the mechanism unit side 2U on a base end side
thereof. Also, the unit portion wiring 67 of the mechanism unit 2U, with which the
other mechanism unit 2U in the next stage thereof is possibly connected, have a wiring
relative to the drive source 2Ub possessed by itself and a wiring to connect with
the other mechanism unit 2U in the next stage.
[0044] At least one of the mechanism units 2U forming respective parts of the machine tool
2 has a unit built-in control circuit 2Ud to drive the drive source 2Ub of this mechanism
unit 2U. In the example as shown in Fig. 1A, the mechanism unit 2U
1 has the unit built-in control circuit 2Ud. This unit built-in control circuit 2Ud
is connected with the main control device 31 through the unit portion wiring 67 of
the mechanism unit 2U and the base portion wiring 62 of the base 2A.
[0045] Although the base portion wiring 62 and the unit portion wiring 67 are assumed to
be one in number in Fig. 1A for the sake of brevity, each of the base portion wiring
62 and the unit portion wiring 67 includes a signal wiring and an electric power wiring.
The signal wiring may have a plurality of types of standard wirings laid in. In dependence
on the signal wiring and the electric power signal, the various terminals 63, 64,
68 and 69 are also available for the signal wiring and for the electric power wiring.
Each of those terminals 63, 64, 68 and 69 is in the form of a plug-in connection type
male side or female side connector or the like, and is connected either directly or
through a flexible wiring. It is to be noted that the base portion wiring 62 and the
unit portion wiring 67 may be bundled together or, alternatively, laid at different
positions.
[0046] Even with respect to the terminals 63, 64, 68 and 49, the signal wiring and the electric
power wiring may be laid at the same position or, alternatively, laid at different
positions. It is to be noted that the signal wiring of the base portion wirings 62
is connected with the main control device 31, and the electric power wiring thereof
may be connected with a commercial alternating current source available at a position
different from the main control device 31.
[0047] Fig. 2 illustrates an example in which for two machine tools 2 of the unit configuration
type, one conveyance apparatus 1 of the unit configuration type is installed. The
machine tools 2 are shown in a condition with machine covering provided therein. A
combination of the machine tool 2 and the conveyance apparatus 1 can be available
in various forms as will be described in detail with particular reference to Fig.
14 to Figs. 16A to 16F.
[0048] Fig. 3 illustrates an example of a group of the mechanism units 2U.
An arbitrarily chosen mechanism unit 2U of the group G1 can be selectively installed
on a first unit installing seat 61
1 of the base 2A. For the mechanism unit 2U of the group G1, a mechanism unit 2U
G11 of a standard turret, a mechanism unit 2U
G12 of a rotary tool turret, and a mechanism unit 2U
G13 equipped with an Y-axis function can be selectively installed. A second unit installing
seat 61
2 of the base 2A is in the form of a guide rail and a mechanism unit 2U
G21 of the group G2 is installed on the guide rail. The mechanism unit 2U
G21 is in the form of a cross slide device (XZ slide), which is a feed slide device that
enables movement in two axis directions perpendicular to each other. So far shown
therein, the mechanism unit 2U
G21 is shown as available in one type, but a plurality of the mechanism units may be
prepared so that one of them can be arbitrarily chosen for replacement.
[0049] On the cross slide device which is the mechanism unit 2U
G21 of the group G2, an arbitrarily chosen mechanism unit 2U of the group G3 can be selectively
installed. The mechanism units 2U of the group G3 includes a mechanism unit 2U
G31, which forms a headstock device for a high rigidity, and a mechanism unit 2U
G32 which forms a headstock device for a high speed. To the mechanism units 2U
G31 and 2U
G32 of the group 3, the mechanism unit 2U of the group G4 is mountable. As the mechanism
unit 2U of the group G4, in the instance as shown, a mechanism unit 2U
G41 forming an automatic chuck changing or replacing main shaft to replace a chuck on
a main shaft in a work holding condition is made available. This mechanism unit 2U
G41 forming the automatic chuck changing main shaft is mounted as desired.
[0050] Other than that, a mechanism unit 2U
G51 of a chuck changing device is mountable on the unit installing seat (not shown) of
the base 2A as the mechanism unit 2U of the group G5. The mechanism unit 2U
G51 of the chuck changing device is operable to replace the chuck in the mechanism unit
2U
G41 of the automatic chuck changing main shaft.
[0051] One example of the machine tool 2 constructed with the use of the mechanism units
2U shown in Fig. 3 is shown in Fig. 4. The machine tool 2 shown in Fig 4 is an example
in which the mechanism unit 2U
G11 of the standard turret and the mechanism unit 2U
G21 comprised of the XZ slide are installed on the base 2A shown in Fig. 3, and the mechanism
unit 2U
G32, which forms the high speed headstock device, is installed on the mechanism unit
2U
G21 comprised of the XZ slide. This machine tool 2 forms a lathe of a main shaft moving
type. Fitting a machine covering to a main body of the machine tool so assembled in
the manner described above results in one machine tool 2.
[0052] Fig. 5 illustrates a specific example of the mechanism unit 2U
G12 of the rotary tool turret. This mechanism unit 2U
G12 is assembled by mounting a turret 82, which is a tool post forming a movable part
2Ub, on a turret support 81 which is a unit main body 2Ua (shown in Fig. 1A), so that
the turret 82 can be rotated for indexing and then by mounting a rotary tool 83 on
the turret 82. In this figure, the rotary tool 83 is shown as removed from the turret
82. The turret support 81 has installed thereon the drive source 2Uc (best shown in
Fig 1A) to drive the turret 82 to turn, and also has the unit built-in control circuit
2Ud (also best shown in Fig. 1A) built therein.
[0053] Fig. 6 illustrates a specific example of the mechanism unit 2U
G13 equipped with a Y-axis function. In this example, a lifter unit 85 having the turret
82 mounted thereon is installed on a lifter support device 84. The lifter support
device 84 is of a type in which a lifter 84c is installed on the lifter support device
main body 84a, which is the unit main body 2Ua (best shown in Fig. 1A), through a
lifter rail 64b, so that the lifter 84c can be selectively ascended or descended,
and the drive source 2Uc (best shown in Fig. 1A) to drive the lifter 84c to selectively
ascend and descend is installed. The lifter 84c and the turret 82 form the movable
part 2Ub (best shown in Fig. 1A) in the mechanism unit 2U. Also, in this example,
the drive source 2Uc of the mechanism unit 2U includes the drive source to selectively
ascend or descend the lifter 84c and the drive source to turn the turret 82. The lifter
support device main body 84a has the unit built-in control circuit 2Ud (best shown
in Fig. 1A) built therein. It is to be noted that the turret 82 shown in Figs. 5 and
6 is, for example, a decagonal turret.
[0054] Figs. 7A to 7C illustrate various examples of tool heads 86 that are installed on
the turret 82 shown in Figs. 5 and 6. In the example shown in Fig. 7A, a tool 87 comprised
of two turning blades for an outer diameter processing are fitted to a common tool
holder 88 in a fashion parallel to each other. In the tool head 86 of Fig. 7B, the
tool 87, comprised of two turning blades for an inner diameter processing, is fitted
to the common tool holder 88 in a fashion parallel to each other. In the tool head
86 shown in Fig. 7C, two rotary tools 87A are fitted to the common tool holder 88
in a fashion parallel to each other. Each of those tool heads 86 has the tool holder
88 that is fitted to the turret 82 best shown in Figs. 5 and 6. Where those tool heads
86 are used, it is designed to have the two tools, and therefore, an initial setup
replacement can be reduced.
[0055] Referring to Fig. 1A, the conveyance apparatus 1 includes a guide equipped frame
12, having a travel guide 4 disposed on a frame 12a, and a traveling member 3 movable
along the travel guide 4. The traveling member 3 is provided with a traveling member
mounting mechanism 3B having the chuck 19 that serves as a holding unit for the work.
The guide equipped frame 12 referred to is made up of a plurality of travel guide
units 12U (12U
A and 12U
B) connected with each other so as to line up in a direction parallel to a traveling
direction of the traveling member 3. The travel guide unit 12U is of a type in which
the travel guide 4 and the frame 12a having this travel guide 4 mounted thereon are
divided into a plurality of pieces in a direction lengthwise thereof, and electric
components and electric wirings installed on the frame 12a are too divided for each
of the travel guide units 12U. It is to be noted that a portion of each of the travel
guide units 12U on the frame 12a is referred to as a frame part 12aa.
[0056] A drive source to drive the traveling member 3 is a linear motor 5 of a synchronous
type comprised of a plurality of individual motors 6 which are armatures on a primary
side arranged along the travel guide 4, a mover 7 provided in the traveling member
3. The individual motors 6 are spacedly arranged relative to each other. Each of the
travel guide units 12U is provided with the individual motors 6 and sensors 15 to
detect the position of the mover 7 as electric component parts. The sensor 15 is in
the form of linear sensors and is provided for each of the individual motors 6. A
travel control unit 10, which is a control unit for the linear motor 5, is made up
of a single multiple unit controller 10A (best shown in Fig. 30) described in detail
later, and an individual motor control unit 8 mounted on each of the individual motors
6, as shown in Fig. 1A, to control the corresponding individual motor 6. Each of the
individual motor control units 8 includes an inverter and a control part to control
the corresponding individual motor 6 by controlling the inverter, and is installed
on the frame 12a having been positioned in the vicinity of the associated individual
motor 6.
[0057] As shown in Figs. 8A to 8C, the travel guide unit 12U includes a travel guide unit
12U
A which forms a rectilinear part of the guide equipped frame 12, and a travel guide
unit 12U
B which forms a curved part thereof. Those travel guide units 12U
A and 12U
B can be sequentially connected in an arbitrary combination. Although each of those
travel guide units 12U
A and 12U
B has pillars 11 at opposite ends thereof, pillars 11 at sites that continue to each
other may be omitted. Where they are omitted, the travel guide unit 12U having a pillar
11 at one end thereof may be prepared or, alternatively, the pillar 11 at one end
may be removed from the travel guide unit 12 having the pillars 11 at the opposite
ends thereof.
[0058] Figs. 9A to 9C shows the travel guide unit 12U
A which form the rectilinear part, as viewed in various directions and in section,
and Figs. 10A to 10C show the travel guide unit 12U
B which will form the curved part, as viewed in various directions and in section.
Each of those travel guide units 12U
A and 12U
B is such that the individual motor control units 8, put together into a neighboring
group, are mounted on a common circuit substrate to define a single motor drive circuit
part 9. Each of the individual motor control units 8 is connected with the wiring
(not shown) provided in each of the travel guide unit 12 and is provided with terminals
(not shown) at opposite ends of such travel guide unit 12 for that wiring.
[0059] Fig. 11 illustrates a block diagram showing the relation in wiring of the control
system in the unit configuration type processing equipment. The main control device
31 referred to previously includes a computer numerical control device 32 and a computerized
processing equipment integrity control unit 33, and the processing equipment integrity
control unit 33 and a host computer 35 are connected with each other. The processing
equipment integrity control unit 33 and the numerical control device 32 may be either
disposed spaced from each other or provided within the same housing or in the same
control panel. The processing equipment integrity control unit 33 referred to above
is operable to control the unit configuration type processing equipment in its entirety,
and is mainly operable to perform a sequence control. The processing equipment integrity
control unit 33 is comprised of a programmable controller or the like.
[0060] The processing equipment integrity control unit 33 has a function of controlling
the machine tool 2 and a function of controlling the conveyance apparatus 1 and accessory
equipments 72 and, of the controls of the machine tool 2, the numerical control is
carried out by the numerical control device 32. The host computer 35 referred to above
is operable to perform a production management and is connected with the processing
equipment integrity control unit 33 through a local area network (LAN) or the like
so as to provide the processing equipment integrity control unit 33 with a production
command such as, for example, a production schedule or the like.
[0061] Of the mechanism units 2U of the machine tool 2, a mechanism unit 2U that requires
a shaft moving control by means of a feedback control such as, for example, a mechanism
unit 2U forming a cross slide device, a mechanism unit 2U forming a headstock and
a mechanism unit 2U forming a rotary tool, in the instance as shown, has no built-in
control circuit 2Uc built therein and the drive sources 2Ub therefor are connected
with the numerical control device 32 so that they can be directly controlled by the
numerical control device 32.
[0062] Of the mechanism units 2U of the machine tool 2, the mechanism unit 2U driven by
the sequence control has the built-in control circuit 2Uc built therein such that
with a command of the processing equipment integrity control unit 33 given to the
built-in control circuit 2Uc, the control of the drive source 2Ub within the mechanism
unit 2U can be performed by the built-in control circuit 2Uc. Accordingly, where the
mechanism unit 2U is recombined with a different type, the processing equipment integrity
control unit 33 sends a simple control signal such as, for example, an ON/OFF signal,
and the detailed control is carried out by the built-in control circuit 2Uc. Wirings
for the transmission of those signals are carried out through the base portion wiring
62, the unit portion wiring 67 and their related terminals 64, 68 and 69, all of which
have been previously described with particular reference to Fig. 1A.
[0063] Regarding the conveyance apparatus 1, various portions have respective control units
built therein, each of which units is operable in response to a corresponding command
of the processing equipment integrity control unit 33 to cause the respective drive
source to be controlled by the control unit built therein. In other words, the guide
equipped frame 12, which is a conjugation of the travel guide units, has a travel
control unit 10 to drive the linear motor 5 which is a drive source for traveling.
The traveling member mounting mechanism 3B includes drive sources 16a and 17a (only
one of which is representatively shown in Fig. 11) to move in the anteroposterior
direction and elevating direction, respectively, and is provided with a built-in control
circuit 16b. A loader chuck 19 has a drive source 19a to selectively open and close,
and is provided with a built-in control circuit 19b. In response to commands of the
processing equipment integrity control unit 33, traveling control of the linear motor
5 is performed through the built-in travel control unit 10, controls of the various
drive sources 16a and 17a of the traveling member mounting mechanism 3B are performed
through the built-in control circuit 16b, and control of the drive sources 19a of
the loader chuck 19 is performed through the built-in control circuit 19b.
[0064] Even in the accessory device 72 such as, for example, a stocker, there is provided
a built-in control circuit 72b to control a drive source 72a, which drive source 72a
is controlled through the built-in control circuit 72b in accordance with a command
of the processing equipment integrity control unit 33. Transmission of signal to the
respective built-in control circuits 16b and 19b of the traveling member mounting
mechanism 3B and the loader chuck 19 is accomplished through a wireless local area
network from the processing equipment integrity control unit 33 or the control panel
34.
[0065] Fig. 12 illustrates an explanatory diagram including a perspective view of a mechanical
portion of the unit configuration type processing equipment and a block diagram of
a control system. In this example, one conveyance apparatus 1 is combined with two
machine tools 2.
[0066] The processing equipment integrity control unit 33 provided for each of the machine
tool 2 is connected with the numerical control device 32 and the control panel 34
through LANs 38 and 39. A local area network capable of performing a high speed communication
effective to obtain a real-time property is used for the local area network (LAN)
39 that is used to connect between the processing equipment integrity control unit
33 and the numerical control device 32. The processing equipment integrity control
unit 33 and the numerical control device 32 may be either arranged spaced a distance
from each other or provided within the same housing or control panel. The host computer
35 is connected with the control panel 34 and the numerical control device 32 of each
of the machine tools 2 through a local area network 37 and a hub 36. Each of the control
panels 34 includes a computer such as, for example, a personal computer or the like,
an image display device such as, for example, a liquid crystal display device or the
like, and an input key. The processing equipment integrity control unit 33 and the
built-in control circuit 72b, which forms an accessory control unit, are connected
with each other through a controller area network (CAN) communication linkage 40.
[0067] Fig. 13 illustrates a diagram with a form display modified, which is supplemented
to the block diagram shown in Fig. 11. It is, however, to be noted that a difference
exists in portion of the contents shown in Fig. 11. In this example, the control panel
34 is communicated with a wireless communicating unit 47, which is a wireless local
area network terminal of the traveling member mounting mechanism 3B, through the hub
101 and also through a wireless communicating unit 49a, which is a wireless local
area network terminal, and is then communicated with the built-in control circuits
16b and 19b of the traveling member mounting mechanism 3B via the wireless communicating
unit 47. The built-in control circuit 16b is made up of a built-in control circuit
main body 16ba and a two axis amplifier 16bb, and controls the Y-axis and Z-axis drive
sources 16a and 17a with the two axis amplifier 16bb. By the built-in control circuit
main body 16ba, a command is given to an amplifier 105 for a swivel motor 104 operable
to exchange the respective positions of the two chucks 19. A sensing board 106 is
connected with the processing equipment integrity control unit 33 through the CAN
communication linkage 40 and a RIO (Remote Input-Output) board 107 is connected with
the processing equipment integrity control unit 33 through RIO wiring.
[0068] Fig. 14 to Figs. 16A to 16F illustrate explanatory diagrams showing the relation
between various types of combinations of the travel guide units 12U in the conveyance
apparatus 1 and the machine tool 2. In particular, Fig. 14 illustrates an example
of a fundamental combination, which is made up of one machine tool 2 and one rectilinear
travel guide unit 12U
A. In an example shown in Fig. 15A, a plurality of rectilinear travel guide units 12U
A are connected with each other, and a plurality of machine tools 2 are arranged along
the rectilinear travel guide units 12U
A. In an example shown in Fig. 15B, two rectilinear travel guide units 12U
A and one curved travel guide unit 12U
B are connected to provide an L-shaped guide equipped frame 12 with a machine tool
2 arranged along each of the rectilinear sections.
[0069] In an example shown in Fig. 16A, a plurality of rectilinear travel guide units 12U
A are connected together with two machine tools 2 installed therealong and, at the
same time, a delivery stocker 111, an external measuring instrument 112 and a discharge
conveyor 113, all of which are accessory equipments, are arranged. In an example shown
in Fig. 16B, a plurality of or one rectilinear travel units 12U
A are connected on opposite sides of one curved travel guide unit 12U
B and a machine tool 2 is arranged in a rectilinear section and, at the same time,
an external measuring instrument 112 is installed in a curved section. Also, two traveling
members 3 are installed relative to the guide equipped frame 12. In an example shown
in Fig. 16C, two curved travel guide units 12U
B and a plurality of rectilinear travel guide units 12U
A are connected to define a travel path of a U-shaped configuration and a machine tool
2 is disposed in each of rectilinear sections and an external measuring instrument
112 is disposed in a curved section.
[0070] In an example shown in Fig. 16D, by a combination of four curved travel guide units
12U
B and four rectilinear travel guide units 12U
A, a ring shaped travel path of a square shape is formed, and machine tools 2 are disposed
at two rectilinear sections. Also, a discharge conveyor 113 is disposed at a rectilinear
section. In an example shown in Fig. 16E, by a combination of four curved travel guide
units 12U
B and a plurality of rectilinear travel guide units 12U
A, a ring shaped travel path of an elongated rectangular shape is formed with machine
tools 2 disposed in each of rectilinear section. Three travelling members 3 are installed
on the guide equipped frame 12. In an example shown in Fig. 16F, the unit configuration
type processing equipment of the structure shown in and described with reference to
Fig. 16D is installed at two locations and a conveyor 114 is installed between those
unit configuration processing equipments.
[0071] As described above, by combining the curved travel guide unit 12U
B and the rectilinear travel guide unit 12U
A together, the guide equipped frames 12 defining the various travel path can be configured.
Also, since as the drive source for the traveling member 3, the linear motor 5 having
the individual motors 6, which forms respective armatures on the primary side and
which are arranged in the guide equipped frame 12, is employed, it is easy and possible
to quickly install the plurality of the traveling members 3 on the single guide equipped
frame 12.
[0072] It is to be noted that by combining only the arcuately curved travel guide units
12U
B, a ring shaped guide equipped frame 12 or an S-shaped guide equipped frame 12 can
be constructed as shown in Figs. 31A and 31B.
[0073] In the next place, the details of the conveyance apparatus 1, in which the travel
guide units 12U of the construction hereinabove described are combined, and its travel
guide units 12U will be described with particular reference to Figs. 17 to 30. As
shown in Figs. 17 and 18, the guide equipped frame 12 defines an L-shaped transport
path formed by connecting rectilinear travel guide units 12U
A with opposite ends of the single curved travel guide unit 12U
B.
[0074] As shown in Fig. 22, the traveling member 3 is a carriage having traveling wheels
21 (21i and 21o) and has the traveling member mounting mechanism 3B installed in an
undersurface thereof. The chuck 19, which is a holding unit to hold the work W, and
a moving mechanism 20 to move the chuck 19 are provided in this traveling member mounting
mechanism 3B. The moving mechanism 20 includes an anteroposterior moving carriage
16 mounted on the traveling member 3 to selectively advance and retract in an anteroposterior
direction (Z-axis direction) perpendicular to the direction of travel (X-axis direction),
a lifter 17 of a rod-like configuration mounted on this anteroposterior moving carriage
16 to selectively ascend and descend, and a work holding head 18 provided at a lower
end of the lifter 17. The chuck 19 referred to previously is provided two in number
on the work holding head 18. The two chucks 19 are adapted to be replaced by a chuck
direction converting mechanism (not shown) within the work holding head 18 between
a downwardly oriented position and a forwardly oriented position. A drive source for
this chuck direction converting mechanism is the swivel motor 104 which has been shown
in and described with reference to Fig. 13.
[0075] Referring to Fig. 21, the anteroposterior movable carriage 16 is operated by an electrically
operated drive source 16a such as, for example, a motor mounted on the traveling member
3, so as to move in an anteroposterior direction and, on the other hand, the lifter
17 is driven by an electrically operated drive source 17a such as, for example, a
motor mounted on the anteroposterior movable carriage 16 so as to ascend and descend.
The chuck 19 has chuck pawls (not shown) that are selectively opened or closed by
an electrically operated drive source 19a such as, for example, a solenoid to hold
the work W.
[0076] As shown in a top plan view in Fig. 19, the travel guide 4 is made up of the two
rectilinear sections 4A and 4A, which lie perpendicular to each other, and the curved
section 4B that connects the rectilinear sections 4A and 4A together. The curved section
4B is comprised of a single curved travel guide unit 12U
B and the rectilinear sections 4A and 4A are each comprised of the rectilinear travel
guide unit 12U
A. There are provided an outer diameter side guide face 4o and an inner diameter side
guide face 4i, which are continued over those rectilinear sections 4A and the curved
section 4B and which are positioned on outer and inner diameter sides of the curved
section 4B in parallel relation to each other so as to be oriented inwardly and outwardly,
respectively. Further, there are provided a pair of wheel guide face 4u, oriented
in a direction upwards and downwards, in the curved section 4B. Each of the wheel
guide faces 4u is provided along the outer diameter side guide face 4o and the inner
diameter side guide face 4i.
[0077] As shown in a sectional representation in Fig. 24, the outer diameter side guide
face 4o and the inner diameter side guide face 4i are positioned above traveling wheels
21i and 21o that run on the wheel guide face 4u. The traveling member 3 is provided
not only with the traveling wheels 21i and 21o, but also with outer diameter side
rollers 23, which are guided by the outer diameter side guide face 4o, and inner diameter
side rollers 24, which are guided by the inner diameter side guide face 4i. The outer
and inner diameter side rollers 23 and 24 rotate about a vertical axis.
[0078] Referring to Figs. 23A to 23D, the number of the outer diameter side rollers 23 and
that of the inner diameter side rollers 24 are chosen to be three or more, and those
three or more outer and inner diameter side rollers 23 and 24 are arranged in respective
rows extending in a direction parallel to the direction of travel. In the instance
as shown, the outer diameter rollers 23 are positioned adjacent front and rear ends
and an intermediate portion of the traveling member 3, thus totaling to three in number.
Those three or more outer diameter side rollers 23 are arranged in an arcuate shape
conforming to the arcuate shape of the outer diameter side guide face 4o which forms
the curved section 4B (Fig. 19). On the other hand, the inner diameter side roller
24 are arranged in a rectilinear shape conforming to a portion of the inner diameter
side guide face 4i which forms the rectilinear section 4A, thus totaling to four in
number. In detail, the inner diameter side rollers 24 are positioned at two locations
adjacent to front and rear ends of the traveling member 3 and two locations on anteroposterior
sides of an intermediate portion of the traveling member 3. The traveling member 3
has a plan shape in which a side edge on the outer diametric side represents an arcuate
shape following a portion of the outer diametric side guide face 4o forming the curved
section 4B, but it may be of any suitable shape provided that it will not interfere
with the travel guide 4, and is therefore of any freely designed shape.
[0079] The traveling wheels 21i and 21o in the traveling member 3 are provided on widthwise
opposite sides so that these wheels 21i and 21o can run on the two guide faces 4u
on the opposite sides. The traveling wheel 21o on the outer diameter side is rotatably
mounted on a movable wheel support body 28 which is so supported as to be turned in
direction about the vertical axis O relative to the traveling member 3. Each of those
movable wheel support bodies 28 is provided with a direction manipulating element
25 of a lever-like shape protruding towards the outer diameter side, and a front end
of the direction manipulating element 25 is provided with a cam follower 25a such
as, for example, a roller that is rotatable about the vertical axis. A cam face 26
(best shown in Fig. 24) to guide the cam follower 25a at the free end of the respective
direction manipulating element 25 is provided in the travel guide 4 over the entire
length in a direction conforming to the direction of travel. This cam face 26 is so
provided at a location, where the traveling member 3 enters the curved section (best
shown in Fig. 19), that the direction of the associated traveling wheel 21o can be
forcibly diverted.
[0080] Referring now to Fig. 21, a running drive of the traveling member 3 is carried out
by a linear motor 5 of a synchronous type. The linear motor 5 is a discrete or discontinuous
type linear motor including a plurality of individual motors 6, mounted on the frame
12, and a single mover or movable magnet array 7. Each of the individual motors 6
is of a type capable of functioning as an armature on the primary side of a separate,
single linear motor. Those individual motors 6 are arranged along the travel guide
4 over the entire traveling zone of the traveling member 3 and having spaced a distance
from each other. The mover 7 referred to above is comprised of a permanent magnet
and is mounted on the traveling member 3. A travel control unit 10 to drive the linear
motor 5 is made up of a plurality of individual motor drive devices 8 to drive the
respective individual motors 6 and a multiple unit controllers 10 (which will be described
in detail with particular reference to Fig. 30) to apply position commands and others
to the individual motor drive devices 8. Two of the individual motor drive devices
8 are arranged into a motor drive circuit block 9 and the respective motor drive circuit
block 9 is mounted on the frame 12.
[0081] As shown in Figs. 26 and 27, each of the individual motors 6 is of a type that can
be driven with a three-phase alternating current and is a three pole armature provided
with three electrodes 6U, 6V and 6W one for each of the three phases (U, V and W phases).
The direction of arrangement of those electrodes 6U, 6V and 6W conforms with a moving
direction X of the mover 7. Each of those electrodes 6U, 6V and 6W is comprised of
a core 6Ua, 6Va and 6Wa and a coil 6Ub, 6Vb and 6Wb. The cores 6Ua, 6Va and 6Wa are
of a type protruding pectinately from a common core base portion 6d. The individual
motors 6 arranged in a plural number are identical in structure with each other and,
accordingly, respective lengths A thereof as measured in a direction conforming to
a mover running direction are identical with each other. It is to be noted that although
in this example, the number of the pole of each of the individual motors 6 has been
shown and described as three, it may not be necessarily limited to three, but it may
be an integral multiplicity of three, for example, nine.
[0082] The movers 7 each in the form of N and S magnetic poles comprised of a permanent
magnet are provided in a plural number and are arranged on a mover base body 7a in
a direction conforming to the traveling direction X. It is also to be noted that the
number of the N and S magnetic pole pairs may be arbitrarily designed. The mover 7
has a length B enough to extend over the plurality of the individual motors 6.
[0083] Referring to Fig. 30, the multiple unit controller 10A of the travel control unit
10 is operable in response to a position command, fed from a host control unit, to
apply position commands necessary to drive the corresponding individual motors 6 to
respective individual motor control units 8. In other words, the position command,
which is converted into a coordinate system of each of the individual motors 6, is
applied to the individual motor control units 8 for the respective individual motors
6. The multiple unit controller 10A is comprised of a computer such as, for example,
a microcomputer or a personal computer, a program therefor, circuit elements and so
on.
[0084] Each of the individual motor control units 8 is made up of a motor drive circuit
(not shown) of a strong current system for supplying an electric motor current to
the associated individual motor 6 and a control unit (not shown) of a weak current
system for controlling this motor drive circuit, and includes a substrate having various
circuit elements mounted thereon. The motor drive circuit of the strong current system
is comprised of an inverter or the like provided with a plurality of switching elements
and is connected with a direct current source (not shown) for driving purpose. The
control unit of the weak current system for each of the individual motor control units
8 and the multiple unit controller 10A is comprised of a microcomputer and a program
therefor and various circuit elements and so on.
[0085] Each of the individual motor control units 8 has a function of controlling a feedback
control of the position, velocity and electric current in a cascade control. The position
feedback performs a feedback control of a predetermined position loop gain in dependence
on a deviation between a detection value of a sensor 15 to detect the current position
of the mover 7 relative to the individual motor 6 and a command value of the position
command. The velocity feedback is carried out with the use of a speed detection value
obtained through a derivation from the position detection value of the sensor 15.
The current feedback is such as to control an electric motor drive current by detecting
a drive current, applied to the individual motor 6, with an electric current detecting
unit 14, and then generating the electric current value dependent on the deviation
between the electric current detection value and the electric current command value
with the use of a predetermined electric current loop gain. This electric current
control unit is of a type capable of performing a control by means of a vector control
or the like and has a function of performing an electric current control in correspondence
with the magnetic pole position of the mover 7.
[0086] As shown in Fig. 28, each of the sensors 15 is a linear scale, which is arranged
in a rectilinear direction conforming to the direction of arrangement of the coils
of the individual motors 6 and is of a type capable of accomplishing a position detection
within a somewhat longer range than the length of the individual motors 6. Each of
the sensors 15 is, as specifically shown in Fig. 29, comprised of a plurality of sensor
elements 15a arranged in a direction lengthwise thereof, and each of those sensor
elements 15a is comprised of a magnetic sensor element for detecting the magnetism
of the mover 7.
[0087] More specifically, each of the sensor elements 15a is operable to detect the magnetic
pole position of the magnetic pole pair 7P of each of the mover 7. In other words,
for the length tp of the magnetic pole pair 7P, a magnetic force having a peak of
one N-pole side and S-pole side is generated, and therefore, the detection of the
peak position on the N-pole side or S-pole side results in detection of the magnetic
pole position. Also, the sensor 15 outputs one position detection value, which is
the position of the mover 7, from an output of each of the sensor elements 15a. It
is to be noted that the sensor 15 is provided as a position sensor for detecting merely
the position of the mover 7 and a magnetic pole sensor may be provided separate from
the sensor 15, or a particular one of the sensor elements 15a of the sensor 15 may
be used as a magnetic pole sensor for detecting an electric current by means of magnetic
poles.
[0088] It is to be noted that although in the foregoing description the magnetic pole position
of the mover 7 has been shown and described as detected directly, positioning of the
sensors 15 is difficult to achieve in order to directly detect the magnetic pole position.
In view of this, in the embodiment now under discussion, as best shown in Figs. 20
and 25, a plurality of position detecting magnets 29 are provided in the traveling
member 3 so as to assume a position laterally of the mover 7 so that the magnetic
pole position of the magnets 29 in the traveling direction may align with magnetic
pole position of the mover 7. The sensor 15 detects the magnetic pole position of
the mover 7 by detecting the position detecting magnets 29.
[0089] Referring to Fig. 30, the individual motor 6, the individual motor control unit 8
and the sensor 15 cooperate with each other to define one set of the individual motor
set 6A. This individual motor set 6A is installed on the frame 12 along the travel
guide 4 as shown in Fig. 21. As shown in Fig. 20, even at the curved section 4B of
the travel guide 4, the individual motor set 6A is installed in a manner similar to
that in the rectilinear section 4A. In the individual motor set 6A in the curved section
4B, the individual motor control unit 8 (best shown in Fig. 30) has a function of
correcting the detection value of the sensor 15 in dependence on the curved line.
[0090] As shown in Fig. 22, the traveling member 3 has the chuck 19, which forms a holding
unit for the work W, and the chuck moving mechanism 20 to move the chuck 19 in an
anteroposterior direction and in a vertical direction, which are directions different
from the traveling direction of the traveling member 3. The drive sources 16a and
17a (best shown in Fig. 21) of the moving mechanism 20 and the drive source 19b for
the chuck 19 are of electrically operated type, and supply of an electric power to
these drive sources 16a, 17a and 19a is carried out by a non-contact power feeding
device 41.
[0091] As best shown in Fig. 25, the non-contact power feeding device 41 referred to above
includes an electric power supplying unit 42, comprised of wirings 42a on the primary
side of each of the poles provided along the travel guide 4, and an electric power
receiving unit 43, comprised of a coil on the secondary side, provided in the traveling
member 3 for movement while held in a fashion proximate to and along the wirings 42a.
The wirings 42a are supported by a wiring support member 44. The wiring support member
is installed on the frame 12a provided in the travel guide 4 or on the pillar 11 used
to support the frame 12a. The electric power receiving unit 43 comprised of a coil
in each phase is supported by the traveling member 3 through a movable side support
member 45. The coil in each phase, which forms the electric power receiving unit 43,
is connected with the drive sources 16a, 17a and 19a of the moving mechanism 20 referred
to previously. The wirings 42a of the electric power supplying unit 42 are covered
by a covering 46 having a slit 46a defined therein for the passage of the movable
side support member 45 therethrough.
[0092] It is to be noted that the wiring 42a of the non-contact power feeding device 41
may be provided either in the travel guide unit 12U or separate from the travel guide
unit 12U. It is to be noted that since an electric current received by the electric
power receiving unit 43 is an alternating current resulting from an induced current,
the individual motor control unit 8 is provided with a rectifying circuit (not shown)
for rectifying the alternating current and this rectifying circuit serves as a direct
current power source for the inverter referred to previously.
[0093] Also, the traveling member 3 has mounted thereon a wireless communicating unit 47
forming the wireless LAN, and a command transmitting unit 48 is mounted on the traveling
member 3, which unit 48 controls the respective electrically operated drive sources
16a, 17a and 19a of the moving mechanism 20 and the chuck 19 in response to a signal
communicated by the wireless communicating unit 47. The command transmitting unit
48 may be in the form of a wiring for merely transmitting a signal between the wireless
communicating unit 47 and the drive sources 16a, 17a and 19a. Also, the command transmitting
unit 48 includes a wiring for sending, in addition to a command to drive, signals
of various sensors (not shown), provided in the traveling member 3, to the wireless
communicating unit 47. The wireless communicating unit 47 on the traveling member
3 communicates with a wireless communicating unit 49a provided in a main control device
31 for controlling the entire conveyance system. The various drive sources mounted
on the traveling member 3 are all electrically operated ones and, hence, wirings and
piping necessary to connect with the ground side are all eliminated.
[0094] According to the unit configuration type processing equipment of the construction
described hereinabove, as shown in Fig. 1A, the machine tool 2 is of a unit configuration
type, and the base 2A and each of the mechanism units 2U have the base portion wiring
62 or the unit portion wiring 67 and its terminals 63, 64, 68 and 69. Therefore, when
the mechanism unit 2U is recombined, a wiring work of the machine tool 2 completes
when connection is made to the terminals 64, 68 and 69 provided in the base 2A and
the mechanism unit 2U. Because of this, unlike the conventional system in which mechanism
portions are merely unitized, the degree of freedom of recombination and expansion,
including a connecting work of the wiring system, is high, and, therefore, recombination
in the field can be facilitated and can be accomplished quickly.
[0095] Regarding the drive source 2Ub among the drive sources 2Ub of the respective mechanism
units 2U, which is driven under the sequence control, since the unit built-in control
circuit 2d to drive the drive source 2Ub is provided in such mechanism unit 2U, there
is no need to add a new drive circuit to the main control device 31 nor to modify
the drive circuit in the main control device 31, and a minor change in program or
the like is sufficient in the main control device 31. For this reason, recombination
and/or expansion of the machine tool 2 can be further facilitated and can be further
quickly accomplished.
[0096] Since in addition to the unitization of the machine tool 2, the guide equipped frame
12 in the conveyance apparatus 1 is also unitized, not only can the change in form
of the machine tool 2 be accomplished, but also the change in form can be accomplished
freely as to the number of installations and the change in arrangement. Because of
these, the change in form can be quickly achieved to an optimum processing equipment
suited for the mixed production. Since each of the travel guide units 12U includes
the individual motor 6, which forms the respective armature of the linear motor 5,
and the sensors 15 to detect the position of the mover 7, the recombination can be
further easily accomplished and can be quickly carried out. Since each of the travel
guide units 12U includes the inverter to supply an electric driving power to the individual
motors 6 and the individual motor control unit 8 having a control part to control
the respective individual motors 6 by controlling the inverter, the recombination
can be further easily and quickly accomplished.
[0097] Since the travel guide unit 12U is provided with the travel guide unit 12U
A, which forms the rectilinear section, and the travel guide unit 12U
B, which forms the curved section, by the combination of these travel guide units 12U
A and 12U
B, the transport path can be formed to represents a free path shape such as the L-shaped
confirmation and/or the ring shape as shown in and described with particular reference
to Fig. 14 to Figs. 16A to 16F.
[0098] Also, according to the conveyance apparatus 1 of the construction described above,
since the linear motor 5 comprised of the individual motors 6, disposed along the
travel guide 4, and the movers 7 on the secondary side installed in the traveling
member 3 is utilized for driving the traveling member 3, the traveling member 3 can
be precisely positioned even in the curved section 4B of the travel guide 4. For this
reason, while the transfer table 71 to deliver and receive the work W relative to
the travel body 3 is positioned at the curved section 4B, not only can the work W
be assuredly delivered and received through the precise halting and positioning, but
also the attitude of the work W, the holding position and others can be set properly.
With the curved section 4B of the travel path used for delivery and receipt of the
work W in this way, limitations imposed on the arrangement of the various machines
and equipments within the factory can be relieved and the limited floor space in the
factory can be utilized efficiently.
[0099] In addition, while the traveling member 3 has the chuck 19 and the moving mechanism
20 for moving the chuck 19, the supply of the electric power is made through the non-contact
power feeding device 41. Accordingly, the use of any cable wiring for the supply of
the electric driving power is dispensed with in view of the structure employed for
driving the traveling member 3 by means of the linear motor 5 including the mover
7 on the secondary side provided in the traveling member 3. Because of this, the use
of any cable required to accomplish the electric power supply between the traveling
member 3 and the ground part is eliminated, allowing the transport path to be freely
designed. Also, in the practice of this embodiment, the wireless communicating unit
47 is mounted on the traveling member 3 and by means of the signal communicated by
the wireless communicating unit 47 the chuck 19 and the moving mechanism 20 are controlled.
Thus, in addition to the non-contact power feeding, the wireless communicating unit
47 is used to transmit and receive the signal for controlling, and therefore, it is
possible to dispense with any wiring between the traveling member 3 and the ground
part as well as a transmission system for the control command. Accordingly, it is
possible to design the transport path freely as desired.
[0100] In addition, the linear motor 5 is used for driving the traveling member 3; this
linear motor 5 is of the type in which the mover 7 on the secondary side is in the
form of the permanent magnet of a kind having the N and S magnetic poles alternately
arranged in a direction conforming to the direction of travel; and the use is made
of the sensor 15 for detecting the magnetic poles of the mover 7 or for detecting
the magnetic poles of the detection magnets 29 that are provided in the traveling
member 3 in a pattern identical with that of the magnetic poles of the mover 7. The
positioning control of the traveling member 3 is performed in response to the output
of the sensor 15 for detecting the magnetic poles. Because of this, a further precise
positioning control can be accomplished, and also a highly precise positioning can
be accomplished even at the curved section. Accordingly, the delivery and receipt
of the work W relative to the transfer table 71 at the curved section 4B can be performed
further assuredly at a further proper angle.
[0101] Although the present invention has been fully described in connection with the preferred
embodiments thereof with reference to the accompanying drawings which are used only
for the purpose of illustration, those skilled in the art will readily conceive numerous
changes and modifications within the framework of obviousness upon the reading of
the specification herein presented of the present invention. Accordingly, such changes
and modifications are, unless they depart from the scope of the present invention
as delivered from the claims annexed hereto, to be construed as included therein.
[Reference Numerals]
[0102]
- 1
- Conveyance apparatus
- 2
- Machine tool
- 2A
- Base
- 2U
- Mechanism unit
- 2U1, 2U2, 2U3
- Mechanism unit
- 2Ua
- Unit main body
- 2Ub
- Movable part
- 2Uc
- Drive source
- 2Ud
- Unit built-in control circuit
- 2UG11
- Mechanism of standard turret
- 2UG12
- Mechanism unit of rotary tool turret
- 2UG13
- Mechanism unit having Y-axis function
- 2UG21
- Mechanism unit of group G2
- 2UG31
- Mechanism unit which will become the headstock device
- 2UG32
- Mechanism unit which will become the headstock device
- 2UG41, 2UG51
- Mechanism unit
- 3B
- Traveling member mounting mechanism
- 4
- Travel guide
- 5
- Linear motor
- 6
- Individual motor
- 7
- Mover
- 8
- Individual motor control unit
- 9
- Motor drive circuit part
- 10
- Travel control device
- 10A
- Multiple unit controller
- 12a
- Frame
- 12
- Guide equipped frame
- 12U
- Travel guide unit
- 12UA
- Travel guide unit for rectilinear section
- 12UB
- Travel guide unit for curved section
- 14
- Electric current detecting unit
- 15
- Sensor
- 19
- Chuck (Work holding unit)
- 16a, 17a, 19a
- Drive source
- 21(21i, 21o)
- Traveling wheel
- 31
- Main control device
- 32
- Numerical control device
- 33
- Processing equipment integrity control unit
- 34
- Control panel
- 41
- Non-contact power feeding device
- 47
- Wireless communicating unit
- 61
- Unit installing seat
- 61u
- Unit installing seat
- 62
- Base portion wiring
- 63, 64
- Terminal
- 65
- Installing portion
- 67
- Unit portion wiring
- 68, 69
- Terminal
- W
- Work (Workpiece)
1. A unit configuration type machine tool comprising a plurality of mechanism units,
in which
each of the mechanism units includes a connecting unit to mechanically connect the
other mechanism units or one of component elements of the machine tool with each other,
and
at least one of the mechanism units is an assembly component part of a kind having
a movable part and/or a drive source and also having a unit portion wiring and a terminal
to connect the unit portion wiring.
2. The unit configuration type machine tool as claimed in claim 1, further comprising
a base, the base including:
a plurality of unit installing seats to removably install any one of the mechanism
units;
a base portion wiring; and
terminals on a main control device side and a mechanism unit side that is connected
with the base portion wiring,
in which each of the mechanism units is of a type that is removably installed on the
unit installing seat of the base or on the mechanism unit mounted on the unit installing
seat of the base, and having a terminal and a unit portion wiring that are connected
with a terminal on the mechanism unit side of the base or a terminal of the unit portion
wiring provided in the other mechanism unit.
3. The unit configuration type machine tool as claimed in claim 2, in which at least
one of the mechanism units includes a unit built-in control circuit to drive the drive
source of the mechanism unit, the unit built-in control circuit being connected with
the main control device through the unit portion wiring of the mechanism unit and
the base portion wiring of the base.
4. A unit configuration type conveyance apparatus to load and unload a work onto and
from a machine tool, which comprises:
a guide equipped frame having a travel guide; and
a traveling member movable along the travel guide, the traveling member having a holding
unit to hold the work;
in which the guide equipped frame is comprised of a plurality of travel guide unit
connected with each other in a direction conforming to a traveling direction of the
traveling member.
5. The unit configuration type conveyance apparatus as claimed in claim 4, in which the
travel guide unit includes one of an electric component and an electric wiring.
6. The unit configuration type conveyance apparatus as claimed in claim 5, in which a
drive source to cause the traveling member of the conveyance apparatus to move is
a linear motor, the linear motor comprising a plurality of armatures on a primary
side, that are arranged along the travel guide, and a mover provided in the traveling
member, and
in which each of the travel guide units is provided with the armatures and a sensor
to detect a position of the mover as the electric component parts.
7. The unit configuration type conveyance apparatus as claimed in claim 6, in which each
of the travel guide units comprises:
an inverter to supply an electric driving power to each of the armatures; and
a control part to control the armatures by controlling the inverter.
8. The unit configuration type conveyance apparatus as claimed in any one of claims 4
to 7, in which the plurality of the travel guide units include a travel guide unit,
which forms a rectilinear section of the travel guide, and a travel guide unit which
forms a curved section of the travel guide.
9. A unit configuration type processing equipment which comprises:
a machine tool, the machine tool being a unit configuration type machine tool equipped
with a plurality of types of mechanism units; and
a conveyance apparatus to load and unload a work relative to the machine tool,
in which each of the mechanism units includes a connecting unit to mechanically connect
the other mechanism units or one of component elements of the machine tool with each
other, and
at least one of the mechanism units is an assembly component part of a kind having
a movable part and/or a drive source and also having a unit portion wiring and a terminal
to connect the unit portion wiring.
10. The unit configuration type processing equipment as claimed in claim 9, further comprising
a base, the base including:
a plurality of unit installing seats to removably install any one of the mechanism
units;
a base portion wiring; and
terminals on a main control device side and a mechanism unit side that is connected
with the base portion wiring,
in which each of the mechanism units is of a type that is removably installed on the
unit installing seat of the base or on the mechanism unit mounted on the unit installing
seat of the base, and having a terminal and a unit portion wiring that are connected
with a terminal on the mechanism unit side of the base or a terminal of the unit portion
wiring provided in the other mechanism unit.
11. The unit configuration type processing equipment as claimed in claim 9, wherein the
conveyance apparatus is a unit confirmation type conveyance apparatus, which comprises:
a guide equipped frame having a travel guide; and
a traveling member movable along the travel guide, the traveling member having a holding
unit to hold the work;
in which the guide equipped frame is comprised of a plurality of travel guide unit
connected with each other in a direction conforming to a traveling direction of the
traveling member.
12. The unit configuration type processing equipment as claimed in claim 11, in which
the travel guide unit includes one of an electric component and an electric wiring.
13. The unit configuration type processing equipment as claimed in claim 11, in which
the machine tool is a unit configuration type machine tool including a base and a
plurality of types of mechanism units,
the base comprises:
a plurality of unit installing seats to removably install any one of the mechanism
units;
a base portion wiring; and
terminals on a main control device side and a mechanism unit side that is connected
with the base portion wiring; and
in which each of the mechanism units is of a type that is removably installed on the
unit installing seat of the base or on the mechanism unit mounted on the unit installing
seat of the base, and having a terminal and a unit portion wiring that are connected
with a terminal on the mechanism unit side of the base or a terminal of the unit portion
wiring provided in the other mechanism unit.
14. The unit configuration type processing equipment as claimed in claim 13, in which
at least one of the mechanism units includes a unit built-in control circuit to drive
the drive source of the mechanism unit, the unit built-in control circuit being connected
with the main control device through the unit portion wiring and the terminal of the
mechanism unit and also the base portion wiring and the respective terminals of the
base.
15. The unit configuration type processing equipment as claimed in claim 13 or claim 14,
in which the travel guide unit includes one of an electric component and an electric
wiring.
16. The unit configuration type processing equipment as claimed in claim 13 or claim 14,
in which a drive source to cause the traveling member of the conveyance apparatus
to move is a linear motor, the linear motor comprising a plurality of armatures on
a primary side, that are arranged along the travel guide, and a mover provided in
the traveling member, and
in which each of the travel guide units is provided with the armatures and a sensor
to detect a position of the mover.
17. The unit configuration type processing equipment as claimed in claim 16, in which
each of the travel guide units comprises:
an inverter to supply an electric driving power to each of the armatures; and
a control part to control the armatures by controlling the inverter.
18. The unit configuration type processing equipment as claimed in claim 13 or claim 14,
in which the plurality of the travel guide units include a travel guide unit, which
forms a rectilinear section of the travel guide, and a travel guide unit which forms
a curved section of the travel guide.
19. A mechanism unit for a machine tool comprising an assembly component having a movable
part and a drive source and adapted to be used in a unit configuration type machine
tool of a type defined in claim 2, which mechanism unit comprises:
a terminal and a unit portion wiring, adapted to be connected either with a terminal
of the base on the mechanism unit side or with a terminal of a unit portion wiring
provided in a mechanism unit on a low stage side; and
a unit built-in control circuit to drive the drive source.
20. A travel guide unit that is used in the unit configuration type conveyance apparatus
as defined in claim 4, which travel guide unit comprises:
a travel guide section forming a part of a lengthwise direction of the travel guide;
a frame portion having the travel guide section installed therein;
an armature installed in the frame portion;
a mover provided in the traveling member; and
a sensor installed in the frame portion to detect a position of the mover.